EFFICIENT AND RAPID AFFINITY PURIFICATION OF PROTEINS USING RECOMBINANT FUSION PROTEASES

被引:127
作者
WALKER, PA
LEONG, LEC
NG, PWP
TAN, SH
WALLER, S
MURPHY, D
PORTER, AG
机构
[1] NATL UNIV SINGAPORE,INST MOLEC & CELL BIOL,PROT ENGN LAB,SINGAPORE 0511,SINGAPORE
[2] NATL UNIV SINGAPORE,INST MOLEC & CELL BIOL,PAPILLOMAVIRUS LAB,SINGAPORE 0511,SINGAPORE
[3] NATL UNIV SINGAPORE,INST MOLEC & CELL BIOL,NEUROPEPTIDE LAB,SINGAPORE 0511,SINGAPORE
来源
BIO-TECHNOLOGY | 1994年 / 12卷 / 06期
关键词
D O I
10.1038/nbt0694-601
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
In the affinity purification of recombinant fusion proteins, the rate-limiting step is usually the efficient proteolytic cleavage and removal of the affinity tail and the protease from the purified recombinant protein. We have developed a rapid, convenient and efficient method of affinity purification which can overcome this limitation. In one example of the method, the protease 3C from a picornavirus (3C(pro)), which cleaves specific sequences containing a minimum of 6-7 amino acids, has been expressed as a fusion with glutathione S-transferase. The resultant recombinant 'fusion protease' cleaves fusion proteins bearing (from the amino-terminus) the same affinity tail as the fusion protease, a 3C(pro) cleavage recognition site, and the recombinant protein of interest. The recombinant protein is purified in a single chromatographic step which removes both the affinity tail and the fusion protease. The advantages over existing methods include much improved specificity of proteolytic cleavage, complete removal of the protease and the affinity tail in one step, and the option of adding any desired amount of fusion protease to ensure efficient cleavage. The potential flexibility of the method is shown by the use of various affinity tails and alternative fusion proteases.
引用
收藏
页码:601 / 605
页数:5
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